Centre for Sustainable Materials (SusMat), School of Materials Science and Engineering, Nanyang Technological University (NTU), Singapore, 639798, Singapore.
Department of Biology, Shenzhen MSU-BIT University, No. 1 International University Park Road, Longgang District, Shenzhen, Guangdong Province, 518172, P. R. China.
Adv Sci (Weinh). 2022 Jun;9(18):e2201444. doi: 10.1002/advs.202201444. Epub 2022 May 18.
The slime of velvet worms (Onychophora) is a strong and fully biodegradable protein material, which upon ejection undergoes a fast liquid-to-solid transition to ensnare prey. However, the molecular mechanisms of slime self-assembly are still not well understood, notably because the primary structures of slime proteins are yet unknown. Combining transcriptomic and proteomic studies, the authors have obtained the complete primary sequences of slime proteins and identified key features for slime self-assembly. The high molecular weight slime proteins contain cysteine residues at the N- and C-termini that mediate the formation of multi-protein complexes via disulfide bonding. Low complexity domains in the N-termini are also identified and their propensity for liquid-liquid phase separation is established, which may play a central role in slime biofabrication. Using solid-state nuclear magnetic resonance, rigid and flexible domains of the slime proteins are mapped to specific peptide domains. The complete sequencing of major slime proteins is an important step toward sustainable fabrication of polymers inspired by the velvet worm slime.
黏虫的黏液是一种强韧且完全可生物降解的蛋白质材料,射出后迅速发生液-固转变,从而困住猎物。然而,黏液自组装的分子机制仍不清楚,主要是因为目前还不知道黏液蛋白的一级结构。作者结合转录组学和蛋白质组学研究,获得了黏液蛋白的完整一级序列,并鉴定出了黏液自组装的关键特征。高分子量的黏液蛋白在 N 端和 C 端含有半胱氨酸残基,通过二硫键介导多蛋白复合物的形成。在 N 端还鉴定出了低复杂度结构域,其具有液-液相分离的倾向,这可能在黏液生物制造中起核心作用。利用固态核磁共振,将黏液蛋白的刚性和柔性结构域映射到特定的肽结构域。主要黏液蛋白的完整测序是朝着模仿黏虫黏液的可持续聚合物制造迈出的重要一步。